神经调节
超声波
神经科学
聚焦超声
医学
脑刺激
经颅多普勒
刺激
脑深部刺激
生物医学工程
神经刺激
神经影像学
磁刺激
超声波传感器
治疗性超声
中枢神经系统
超声成像
磁共振成像
模式
大脑发育
机械敏感通道
微气泡
作者
Xuandi Hou,Jianing Jing,Zhuohan Shi,Yizhou Jiang,Lei Sun
标识
DOI:10.1038/s41467-026-69710-8
摘要
Ultrasound can enable deep brain neuromodulation with high spatiotemporal resolution, comparable to well-known modalities like TMS, tDCS, and tACS. However, conventional transcranial ultrasound still lacks the precision needed to modulate a small set of neurons. Here, we introduce hollow silica nanostructures (HSN) that localize and amplify ultrasonic effects for long-term neuromodulation in male mice brains (>9 weeks) by activating mechanosensitive ion channels. By controlling the HSN amount and delivery site, ultrasound can selectively activate targeted brain regions, including M1, striatum, VTA, and STN, at time points ranging from days to weeks, and relieve PD motor symptoms in mice models, without evident toxicity. Overall, our stimulation approach offers a safe, minimally-invasive strategy for effective chronic neuromodulation without genetic modification, with notable therapeutic applications. Conventional transcranial ultrasound often lacks the precision needed to modulate a small set of neurons. Here, the authors demonstrate that hollow silica nanostructures can locally amplify ultrasound, and enable sustained and precise stimulation of deep brain circuits in mice, offering a minimally invasive, nongenetic platform for targeted neuromodulation.
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